• Title/Summary/Keyword: Cell Damage Repair

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Effect of N-acetyl-L-cysteine on human chronic myeloid leukemia cells KCL22 treated with mitomycin C

  • Simonyan, Anna;Hovhannisyan, Galina;Aroutiounian, Rouben;Kim, Jin Kyu
    • Journal of Ecology and Environment
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    • v.37 no.1
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    • pp.31-34
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    • 2014
  • The effectiveness of N-acetyl-L-cysteine (NAC) to protect blood cells against Mitomycin C (MMC) induced genotoxicity was investigated in human chronic myeloid leukemia cells (KCL22) using the alkaline comet assay. The comet assay was selected as sensitive and rapid method for analysis of DNA damage and repair in individual cells. NAC treatment alone did not produce any damage in KCL22 cell. But NAC was found to be effective in reducing genotoxic damage in KCL22 cells exposed to MMC. These results confirm the literature data that, given the safety and ability to reduce DNA damage. NAC may be useful to prevent drug-mediated genotoxicity.

Interferon-Stimulated Gene 15 in the Control of Cellular Responses to Genotoxic Stress

  • Jeon, Young Joo;Park, Jong Ho;Chung, Chin Ha
    • Molecules and Cells
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    • v.40 no.2
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    • pp.83-89
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    • 2017
  • Error-free replication and repair of DNA are pivotal to organisms for faithful transmission of their genetic information. Cells orchestrate complex signaling networks that sense and resolve DNA damage. Post-translational protein modifications by ubiquitin and ubiquitin-like proteins, including SUMO and NEDD8, are critically involved in DNA damage response (DDR) and DNA damage tolerance (DDT). The expression of interferon-stimulated gene 15 (ISG15), the first identified ubiquitin-like protein, has recently been shown to be induced under various DNA damage conditions, such as exposure to UV, camptothecin, and doxorubicin. Here we overview the recent findings on the role of ISG15 and its conjugation to target proteins (e.g., p53,$ {\Delta}Np63{\alpha}$, and PCNA) in the control of cellular responses to genotoxic stress, such as the inhibition of cell growth and tumorigenesis.

Analysis of the global gene expression profiles in genomic instability-induced cervical cancer cells

  • Oh, Jung-Min
    • International Journal of Oral Biology
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    • v.47 no.2
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    • pp.17-24
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    • 2022
  • Preserving intact genetic material and delivering it to the next generation are the most significant tasks of living organisms. The integrity of DNA sequences is under constant threat from endogenous and exogenous factors. The accumulation of damaged or incompletely-repaired DNA can cause serious problems in cells, including cell death or cancer development. Various DNA damage detection systems and repair mechanisms have evolved at the cellular level. Although the mechanisms of these responses have been extensively studied, the global RNA expression profiles associated with genomic instability are not well-known. To detect global gene expression changes under different DNA damage and hypoxic conditions, we performed RNA-seq after treating human cervical cancer cells with ionizing radiation (IR), hydroxyurea, mitomycin C (MMC), or 1% O2 (hypoxia). Results showed that the expression of 184-1037 genes was altered by each stimulus. We found that the expression of 51 genes changed under IR, MMC, and hypoxia. These findings revealed damage-specific genes that varied differently according to each stimulus and common genes that are universally altered in genetic instability.

Involvement of lncRNA-HOTTIP in the Repair of Ultraviolet Light-Induced DNA Damage in Spermatogenic Cells

  • Liang, Meng;Hu, Ke
    • Molecules and Cells
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    • v.42 no.11
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    • pp.794-803
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    • 2019
  • Ultraviolet light (UV)-induced cellular response has been studied by numerous investigators for many years. Long noncoding RNAs (lncRNAs) are emerging as new regulators of diverse cellular process; however, little is known about the role of lncRNAs in the cellular response to UV treatment. Here, we demonstrate that levels of lncRNA-HOTTIP significantly increases after UV stimulation and regulates the UV-mediated cellular response to UV through the coordinate activation of its neighboring gene Hoxa13 in GC-1 cells (spermatogonia germ cell line). UV-induced, G2/M-phase arrest and early apoptosis can be regulated by lncRNA-HOTTIP and Hoxa13. Furthermore, lncRNA-HOTTIP can up-regulate ${\gamma}-H_2AX$ and p53 expression via Hoxa13 in UV-irradiated GC-1 cells. In addition, p53 has the ability to regulate the expression of both lncRNA-HOTTIP and Hoxa13 in vitro and in vivo. Our results provide new data regarding the role lncRNAs play in the UV response in spermatogenic cells.

Effect of DPBll Gene for the Transcriptional Induction by DNA Damage During Cell Cycle in Saccharomyces cerevisiae (출아효모의 세포주기동안 DNA 상해에 의한 발현 유도에 미치는 DPB11 유전자의 영향)

  • 선우양일;임선희;배호정;김중현;김은아;김승일;김수현;박정은;김재우
    • Korean Journal of Microbiology
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    • v.38 no.2
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    • pp.96-102
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    • 2002
  • The S-phase checkpoint mechanisms response to DNA damage or inhibition of DNA replication for maintenance of genetic stability in eukaryotic cells. These roles include cell cycle control arrest at S-phase and Iranscriptional induction of repair genes. To characterize the defects of dpbll mutant for both these responses, we examined the over-expression effect of DPBll gene, the sensitivity to HU, MMS, and the transcriptional pattern by DNA damage agent for RNRS mRNA. RNRS transcript is induced in response to a wide variety of agents that either damage D7A directly through chemical modification or induce stress by blocking DNA synthesis. As results, dpbll-1 cells are sensitive to DNA damage agents and the level of RNR3 mRNA is reduced approximately 40% than wild type cells. Moreover, we found the same results in dpb2-1 cells. Therefore, we propose that DPB2 and DPBll act as a sensor of replication that coordinates the transcriptional and cell cycle responses to replication blocks.

Sensitization of Radiation-Induced Cell Death by Genistein (제니스틴에 의한 방사선유발 세포사멸 민감도증가)

  • Kim, Tae Rim;Kim, In Gyu
    • Journal of Radiation Industry
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    • v.4 no.1
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    • pp.91-94
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    • 2010
  • A number of epidemiological studies as well as biological experiments, showed that genistein, one of the isoflavone, prevents prostate cancer occurrence. In this study, we showed that genistein inhibited the cell proliferation of human promyeoltic leukemia HL-60 cells and induced G2/M phase arrest. In addition, combination of genistein treatment and ${\gamma}$-irradiation displayed synergistic effect in apoptotic cell death of HL-60 cells. This means that the repair of genistein-induced DNA damage was hindered by ${\gamma}$-radiation and thus cell death was increased. In conclusion, genistein is one of the important chemicals that sensitize radiation-induced cell death.

Rad51 Regulates Reprogramming Efficiency through DNA Repair Pathway

  • Lee, Jae-Young;Kim, Dae-Kwan;Ko, Jeong-Jae;Kim, Keun Pil;Park, Kyung-Soon
    • Development and Reproduction
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    • v.20 no.2
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    • pp.141-147
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    • 2016
  • Rad51 is a key component of homologous recombination (HR) to repair DNA double-strand breaks and it forms Rad51 recombinase filaments of broken single-stranded DNA to promote HR. In addition to its role in DNA repair and cell cycle progression, Rad51 contributes to the reprogramming process during the generation of induced pluripotent stem cells. In light of this, we performed reprogramming experiments to examine the effect of co-expression of Rad51 and four reprogramming factors, Oct4, Sox2, Klf4, and c-Myc, on the reprogramming efficiency. Co-expression of Rad51 significantly increased the numbers of alkaline phosphatase-positive colonies and embryonic stem cell-like colonies during the process of reprogramming. Co-expression ofRad51 significantly increased the expression of epithelial markers at an early stage of reprogramming compared with control cells. Phosphorylated histone H2AX (${\gamma}H2AX$), which initiates the DNA double-strand break repair system, was highly accumulated in reprogramming intermediates upon co-expression of Rad51. This study identified a novel role of Rad51 in enhancing the reprogramming efficiency, possibly by facilitating mesenchymal-to-epithelial transition and by regulating a DNA damage repair pathway during the early phase of the reprogramming process.

Antigenotoxicity of Vegetable or Fruit Extract against Cigarette Smoke Condensate (담배연기응축물의 DNA 손상작용과 야채 및 과일추출물의 보호효과)

  • Lee, Hyeong-Ju;Heo, Chan;Kim, Nam-Yee;Heo, Moon-Young
    • YAKHAK HOEJI
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    • v.55 no.3
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    • pp.251-259
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    • 2011
  • Cigarette smoke condensate (CSC) is known to be carcinogenic compound. CSC contains many organic compounds such as polycyclic aromatic hydrocarbons (PAHs), and heterocyclic amine compounds (HCAs). Reactive oxygen species (ROS) are also generated and induce oxidative DNA damage during the metabolism of CSC. The rat microsome mediated and DNA repair enzyme treated comet assays together with conventional comet assay were performed to evaluate the mechanisms of CSC genotoxicity. The organic extract of CSC induced oxidative and microsome mediated DNA damage. Vitamin C as a model antioxidant reduced DNA damage in endonuclease III treated comet assay. One of flavonoid, galangin as a CYP1A1 inhibitor, reduced DNA damage in the presence of S-9 mixture. The ethanol extracts of the mixed vegetables (BV) or the mixed fruits (BF) showed potent inhibitory effects against CSC induced DNA damage with oxidative DNA lesions and in the prescence of S-9 mixture. These results indicate that BV and BF could prevent CSC-induced cellular DNA damage by inhibiting oxidative stress and suppressing cytochrome P450 in mammalian cells.

Polymorphism in the DNA Repair Gene XRCC1 Associated with Squamous Cell Carcinoma and Basal Cell Carcinoma of the Skin in Koreans (한국인의 피부 기저세포암종과 편평세포암종의 XRCC1 유전자 다형)

  • Kang, Sang Yoon;Lee, Goang Gil;Shim, Jeong Yun;Chung, Yoon Gyu;Kim, Nam Keun;Min, Wan Kee
    • Archives of Plastic Surgery
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    • v.33 no.4
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    • pp.433-439
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    • 2006
  • Purpose: DNA in most cell is regularly damaged by endogenous and exogenous mutagens. Unrepaired damage resulted in apoptosis or may lead to unregulated cell growth and cancer. Inheritance of genetic variants at one or more loci results in an reduced DNA repair capacity. These polymorphisms are highly prevalent in the population, and therefore the attributable risks for cancer could be high. Several studies have documented that polymorphisms of XRCC1, XPD and XRCC3 are associated with skin cancer, especially, XRCC1 among of them has been reported frequently. So, this study involves the relationship between mutation of XRCC1 of squamous cell and basal cell cancer of the skin and risk of cancer development in Korean population. Methods: In case control study, study population (n=100, each cancer) is patients who were pathologically diagnosed as skin cancer(squamous cell carcinoma and basal cell carcinoma) in Yonsei Wonju Christian Hospital and Bundang CHA General Hospital between 1998 and 2004. The samples of DNA from whom no history of premalignant skin lesion and other malignant diseases were reported belonged to the control group(n=210). Blood and tissue samples were analyzed for presence of XRCC1 Arg399Glu, Arg280His, Arg194Trp using PCR/ RFLP method. Results: For Korean, there was a significant correlation between XRCC1 Arg399Gln gene mutation and risk of basal cell carcinoma development(Arg 399Gln(GA), p=0.012, OR=2.016, 95% CI; 1.230-3.305) /Arg399Gln (AA), p=0.011, OR=1.864, 95% CI; 1.149-3.026)). And, there was also significant correlation between XRCC1 Arg194Trp and risk of skin squamous cell carcinoma development (Arg194Trp (CT+TT), p=0.041, OR=0.537, 95% CI; 0.301-0.960)). In contrast, there was no significant correlation between XRCC1 Arg280His and risk of either basal cell carcinoma or squamous cell carcinoma development. Conclusions: Our result present that XRCC1 Arg399 Gln in basal cell carcinoma and XRCC1 Arg194Trp in squamous cell carcinoma have possibility of cancer risk and biomarker in Korean population. But XRCC1 Arg280 His known having cancer risk on other studies is not associated with cancer risk to squamous cell carcinoma and basal cell carcinoma in Korean population.

Functional roles of protein phosphatase 4 in multiple aspects of cellular physiology: a friend and a foe

  • Park, Jaehong;Lee, Dong-Hyun
    • BMB Reports
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    • v.53 no.4
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    • pp.181-190
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    • 2020
  • Protein phosphatase 4 (PP4), one of serine/threonine phosphatases, is involved in many critical cellular pathways, including DNA damage response (DNA repair, cell cycle regulation, and apoptosis), tumorigenesis, cell migration, immune response, stem cell development, glucose metabolism, and diabetes. PP4 has been steadily studied over the past decade about wide spectrum of physiological activities in cells. Given the many vital functions in cells, PP4 has great potential to develop into the finding of key working mechanisms and effective treatments for related diseases such as cancer and diabetes. In this review, we provide an overview of the cellular and molecular mechanisms by which PP4 impacts and also discuss the functional significance of it in cell health.